A vibration mechanism for assembly glass bottle molds with anti-bubble generation function
By using a fixed insert and connecting nozzle design in the glass bottle mold, combined with the control of a sliding control plate and a dual-control cylinder, the problems of air bubbles and uneven thickness during the glass bottle forming process are solved, achieving efficient and convenient glass bottle production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- KOA GLASS (SUZHOU) CO LTD
- Filing Date
- 2024-01-25
- Publication Date
- 2026-05-19
AI Technical Summary
Existing prefabricated glass bottle molds are prone to generating air bubbles during the glass forming process in the molten state, and the glass thickness is uneven with large temperature variations, resulting in poor finished product quality and easy cracking.
The bottle bottom mold and the vibrating turntable are connected by a fixed insert block. Hot air is provided by the connecting nozzle to reduce the temperature difference. The mold opening and closing are controlled by a sliding control plate and a dual-control cylinder. With the vibration and rotation of the vibrating turntable, the glass bottle is uniformly formed and easily replaced.
It effectively avoids the formation of air bubbles, improves the thickness uniformity and finished product quality of glass bottle molding, enhances the convenience of mold replacement, and improves processing efficiency.
Smart Images

Figure CN117964215B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of glass bottle mold technology, and in particular to an assembly-type glass bottle mold vibration mechanism that prevents air bubble generation. Background Technology
[0002] Molten glass is typically removed from the furnace via a blower pipe, rolled into a glass mass in a rolling plate or bowl, and then placed into a glass bottle mold. Air is then blown through the other end of the blower pipe to form the glass bottle.
[0003] Based on the above, the existing vibration mechanism for assembly glass bottle molds with anti-bubble generation has the following shortcomings:
[0004] Because of the large temperature difference between the glass bottle mold and the molten glass, bubbles will be generated during the forming process of the molten glass when they come into contact, resulting in poor quality of the finished product. Moreover, simply blowing air cannot make the glass thickness uniform. Furthermore, the glass forming is fast and the temperature changes are large, which can easily cause the glass to crack, thus having a significant impact on the quality of the finished product. Summary of the Invention
[0005] This disclosure relates to an assembly-type glass bottle mold vibration mechanism with anti-bubble generation. The bottom mold and the vibrating turntable can be connected by inserting a fixing block into a fixing hole, which improves the convenience of replacing the bottom mold. One end of the control plate hinged to the bottle body mold is connected to the sliding control plate by a connecting pin. By inserting or removing the connecting pin, the control plate and the bottle body mold can be replaced, which improves the convenience of replacing the bottle body mold and enables the production of various glass bottles.
[0006] The first aspect of this disclosure provides a vibration mechanism for an assembled glass bottle mold that prevents bubble generation, specifically including: a main cylinder hanger; a main vibration cylinder is fixedly installed in the middle of the main cylinder hanger, a central column is fixedly connected to the bottom of the telescopic end of the main vibration cylinder, a connecting air nozzle is slidably connected to the top of the outer side wall of the central column, a dual-control air cylinder is fixedly installed in the middle of the inner side of the central column, a reciprocating motor is fixedly installed in the bottom of the inner side of the central column, a swing claw is hinged to the bottom of the outer side wall of the central column, the bottom of the main cylinder hanger is intermittently inserted into the middle of the top end face of the vibration turntable, four sliding control plates are slidably connected in a circular array on the top end face of the vibration turntable, a control plate is hinged to the middle of the two side walls of the sliding control plates, one end of the control plate is hinged to the bottle body mold, four bottle bottom molds are inserted in a circular array on the top end face of the vibration turntable, the bottom of the vibration turntable is rotatably connected to the top of the fixed base, a control shaft is rotatably connected to the middle of the bottom of the fixed base, and a control motor is installed on the right side of the fixed base of the control shaft.
[0007] Furthermore, the bottom of the vibrating turntable is provided with an annular plate, which is slidably connected to the top inner wall of the fixed base. A key shaft is provided at the middle of the bottom of the vibrating turntable, which is slidably connected to the keyway opened at the top of the control shaft. The four-slotted wheel at the bottom of the control shaft and the intermittent dial connected to the top of the control motor drive shaft constitute an intermittent rotation mechanism.
[0008] Furthermore, the top end face of the vibrating turntable has four hexagonal fixing holes arranged in a ring array. The hexagonal fixing blocks at the bottom of the bottle bottom mold are inserted into the fixing holes. The inside of the bottle bottom mold is hollow and the outer side of the top end face has circular holes arranged in a ring.
[0009] Furthermore, four sets of guide slides are fixedly connected to the top end face of the vibrating turntable. Two guide slides are symmetrically arranged in each set. Each guide slide has a trapezoidal protrusion in the shape of an inverted trapezoid on its top. Two trapezoidal grooves symmetrically opened in the bottom end face of the sliding control plate are slidably connected to the trapezoidal protrusion on the top of each set of guide slides. A connecting seat is opened in the middle of the top end face of the vibrating turntable.
[0010] Furthermore, both side walls of the sliding control plate are connected to control plates via connecting pins. The control plates are hinged to the middle of the outer side wall of the bottle mold. The ends of the two bottle molds near the sliding control plate are hinged to each other. A connecting groove is provided in the middle of the top side of the sliding control plate. A fixed top plate is slidably connected in the sliding groove provided in the middle of the sliding control plate. A top plate groove is provided at the end of the fixed top plate opposite to the bottle mold. The top plate groove is connected to the hinge shaft of the bottle mold.
[0011] Furthermore, a constant temperature groove is provided on the outer side of the mold cavity of the bottle body mold. The top and bottom of the constant temperature groove are open. A combined groove is provided on the bottom of the mold cavity of the bottle body mold. The combined groove is engaged with the outer side wall of the bottle bottom mold. The round hole on the top of the bottle bottom mold is connected to the constant temperature groove.
[0012] Furthermore, the top of the outer wall of the central column is provided with four triangular external brackets in a circular array. The ends of the external brackets are slidably connected to connecting nozzles. The top outer side of the connecting nozzles is provided with a limiting plate, which is locked in the top of the end of the external brackets. A supporting spring is provided between the bottom of the end of the external brackets and the bottom of the connecting nozzles. A cylinder is provided in the middle of the central column. A dual-control cylinder is fixedly installed in the cylinder. The ends of the two telescopic rods of the dual-control cylinder are provided with connecting protrusions, which are locked in the connecting grooves of the sliding control plate. The bottom of the outer wall of the central column is provided with four spherical protrusions in a circular array. The spherical protrusions are in intermittent contact with one end of the fixed top plate.
[0013] Furthermore, the bottom of the outer side wall of the central column is provided with four hidden slots in a circular array, and a swing pawl is rotatably connected in the hidden slot. The outer side wall where the swing pawl is connected to the reciprocating gear at the bottom of the reciprocating motor is provided with control tooth protrusions.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0015] 1. The connecting nozzle at the end of the external bracket, under the action of the support spring, connects the bottom of the connecting nozzle to the constant temperature tank of the bottle mold. Hot air can then be supplied to the constant temperature tank through the connecting nozzle to reduce the temperature difference between the bottle mold and the molten glass, thus preventing air bubbles from forming during the glass forming process. Furthermore, the ends of the two telescopic rods of the dual-control cylinder are equipped with connecting protrusions that also engage with the connecting grooves of the sliding control plate. The dual-control cylinder can control the sliding control plate to slide back and forth, thereby controlling the opening and closing of the bottle mold and facilitating the handling of glass bottles.
[0016] 2. The bottle bottom mold and the vibrating turntable can be connected by inserting the fixing block into the fixing hole, which improves the convenience of replacing the bottle bottom mold. The control plate hinged on the bottle body mold is connected to the sliding control plate by connecting pin. By inserting and removing the connecting pin, the control plate and the bottle body mold can be replaced, which improves the convenience of replacing the bottle body mold and enables the production of various glass bottles.
[0017] 3. By connecting the keyway at the top of the control shaft with the key shaft at the bottom of the vibrating turntable, after the vibrating turntable performs up-and-down reciprocating vibration operations, the vibrating turntable can still be controlled to rotate intermittently by the intermittent dial driven by the control motor and the quarter-groove wheel, so as to realize the position change operation, thereby realizing the continuous operation of glass bottle forming, heat preservation and demolding, which is conducive to improving the processing efficiency of glass bottles. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.
[0019] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.
[0020] In the attached diagram:
[0021] Figure 1 This is an axial view of the vibration mechanism of the glass bottle mold according to an embodiment of the present invention.
[0022] Figure 2 This is a schematic diagram of the overall disassembled structure of the glass bottle mold vibration mechanism according to an embodiment of the present invention.
[0023] Figure 3 This is a cross-sectional bottom view of the vibrating turntable and fixed base of the glass bottle mold vibration mechanism according to an embodiment of the present invention.
[0024] Figure 4This is a cross-sectional view of the vibrating turntable and fixed base of the glass bottle mold vibration mechanism according to an embodiment of the present invention, as well as a disassembled control shaft structure.
[0025] Figure 5 This is a cross-sectional schematic diagram of the vibrating turntable structure of the glass bottle mold vibration mechanism according to an embodiment of the present invention.
[0026] Figure 6 This is a schematic diagram showing the disassembled structure of the sliding control plate, bottle mold, and control plate of the glass bottle mold vibration mechanism according to an embodiment of the present invention.
[0027] Figure 7 This is a schematic diagram of the bottom cross-section of the central column of the vibration mechanism for a glass bottle mold according to an embodiment of the present invention.
[0028] Figure 8 This is a schematic diagram of the disassembled structure of the bottle body mold and the bottle bottom mold of the glass bottle mold vibration mechanism according to an embodiment of the present invention.
[0029] List of reference numerals
[0030] 1. Main cylinder hanger; 2. Main vibration cylinder; 3. Central column; 301. External bracket; 302. Cylinder barrel; 303. Spherical protrusion; 304. Concealed groove; 4. Connecting nozzle; 401. Limiting plate; 5. Support spring; 6. Reciprocating motor; 601. Reciprocating gear; 7. Swinging claw; 701. Control tooth protrusion; 8. Dual-control cylinder; 801. Connecting protrusion; 9. Vibration turntable; 901. Fixing hole; 902. Guide slide plate; 903. Trapezoidal protrusion; 904. Connecting seat; 905. 10. Key shaft; 10. Sliding control plate; 1001. Connecting groove; 1002. Sliding groove; 1003. Trapezoidal groove; 11. Connecting pin; 12. Fixed top plate; 1201. Top plate groove; 13. Bottle body mold; 1301. Constant temperature bath; 1302. Combination groove; 14. Bottle bottom mold; 1401. Fixed insert; 15. Control plate; 16. Fixed base; 17. Control shaft; 1701. Keyway; 1702. Quarter groove wheel; 18. Control motor; 1801. Intermittent dial. Detailed Implementation
[0031] To make the objectives, solutions, and advantages of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Unless otherwise stated, the terms used herein have their ordinary meanings in the art. The same reference numerals in the drawings represent the same parts.
[0032] Example 1: Please refer to Figures 1 to 8 As shown:
[0033] This invention provides a vibration mechanism for an assembled glass bottle mold with anti-bubble generation, including a main cylinder hanger 1; the main cylinder hanger 1 is fixedly mounted on a gantry frame, a main vibration cylinder 2 is fixedly mounted in the middle of the main cylinder hanger 1, a central column 3 is fixedly connected to the bottom of the telescopic end of the main vibration cylinder 2, a connecting air nozzle 4 is slidably connected to the top of the outer side wall of the central column 3, a dual-control air cylinder 8 is fixedly mounted in the middle of the interior of the central column 3, a reciprocating motor 6 is fixedly mounted in the bottom of the interior of the central column 3, a swing claw 7 is hinged to the bottom of the outer side wall of the central column 3, and the bottom of the main cylinder hanger 1 is intermittently inserted into the vibration... At the top end face of the rotating turntable 9, four sliding control plates 10 are slidably connected in a ring array on the top end face of the vibrating turntable 9. Control plates 15 are hinged to the middle of the two side walls of the sliding control plates 10. One end of the control plate 15 is hinged to the bottle body mold 13. Four bottle bottom molds 14 are inserted in a ring array on the top end face of the vibrating turntable 9. The bottom of the vibrating turntable 9 is rotatably connected to the top of the fixed base 16. A control shaft 17 is rotatably connected to the middle of the bottom of the fixed base 16. A control motor 18 is installed on the right side of the fixed base 16 of the control shaft 17.
[0034] The outer wall of the central column 3 has four triangular external supports 301 arranged in a ring at the top. The ends of the external supports 301 are slidably connected to the connecting nozzles 4. The top outer side of the connecting nozzles 4 is provided with a limiting plate 401, which is locked at the top end of the external supports 301. A supporting spring 5 is provided between the bottom end of the external supports 301 and the bottom of the connecting nozzles 4. A cylinder 302 is opened in the middle of the central column 3. A double-control cylinder 8 is fixedly installed in the cylinder 302. The ends of the two telescopic rods of the double-control cylinder 8 are provided with connecting protrusions 801, which are locked in the connecting grooves 1001 of the sliding control plate 10. The bottom of the outer wall of the central column 3 has four spherical protrusions 303 arranged in a ring at the bottom. The spherical protrusions 303 are in intermittent contact with one end of the fixed top plate 12.
[0035] Among them, the bottom of the outer side wall of the central column 3 is provided with four hidden slots 304 in a ring array. A swing claw 7 is rotatably connected in the hidden slot 304. The outer side wall where the swing claw 7 is connected to the reciprocating gear 601 at the bottom of the reciprocating motor 6 is provided with a control tooth protrusion 701.
[0036] Using the above technical solution, the main vibration cylinder 2 controls the lifting and lowering operation of the central column 3. When the central column 3 descends, its bottom is inserted into the connecting seat 904 located in the middle of the top end face of the vibrating turntable 9. At this time, the reciprocating motor 6 controls the rotation of the reciprocating gear 601. Through the meshing of the reciprocating gear 601 and the control tooth 701, the swinging claw 7 swings out from the bottom side wall of the central column 3 and locks into the connecting seat 904, thus connecting the central column 3 and the vibrating turntable 9 into a whole. This allows the main vibration cylinder 2 to drive the central column 3 and the vibrating turntable 9 to perform up-and-down vibration operations, thereby improving the thickness uniformity during glass bottle forming. 3. When descending, the connecting nozzle 4 connected to the end of the external bracket 301 is connected to the constant temperature tank 1301 of the bottle mold 13 by the action of the support spring 5. Hot air can be supplied to the constant temperature tank 1301 through the connecting nozzle 4 to reduce the temperature difference between the bottle mold 13 and the molten glass and avoid bubbles during the glass forming process. The two telescopic rods of the double control cylinder 8 are provided with connecting protrusions 801, which are also engaged in the connecting grooves 1001 of the sliding control plate 10. The double control cylinder 8 can control the sliding control plate 10 to slide back and forth, so as to control the opening and closing of the bottle mold 13.
[0037] Example 2:
[0038] Based on the assembly glass bottle mold vibration mechanism with anti-bubble generation provided in Embodiment 1, the device connects the central column 3 and the vibration turntable 9 into a whole through the swing claw 7 rotatably connected to the bottom of the central column 3, so as to improve the thickness uniformity during glass bottle molding. The assembly glass bottle mold vibration mechanism with anti-bubble generation also includes: four hexagonal fixed insertion holes 901 are arranged in a ring array on the top end face of the vibration turntable 9, the hexagonal fixed insertion block 1401 at the bottom of the bottle bottom mold 14 is inserted into the fixed insertion hole 901, the bottle bottom mold 14 is hollow inside and the outer side of the top end face is provided with circular holes arranged in a ring.
[0039] Four sets of guide slide plates 902 are fixedly connected to the top end face of the vibrating turntable 9. Two guide slide plates 902 are symmetrically arranged in each set. Each guide slide plate 902 has a trapezoidal protrusion 903 in the shape of an inverted trapezoid on its top. Two trapezoidal grooves 1003 symmetrically opened in the bottom end face of the sliding control plate 10 are slidably connected to the trapezoidal protrusions 903 on the top of each set of guide slide plates 902. A connecting seat 904 is opened in the middle of the top end face of the vibrating turntable 9.
[0040] Among them, the two side walls of the sliding control plate 10 are connected to the control plate 15 through the connecting pin 11. The control plate 15 is hinged to the middle of the outer side wall of the bottle mold 13. The two bottle molds 13 are hinged to each other at the end near the sliding control plate 10. A connecting groove 1001 is provided in the middle of the top side of the sliding control plate 10. A fixed top plate 12 is slidably connected in the sliding groove 1002 provided in the middle of the sliding control plate 10. A top plate groove 1201 is provided at the end of the fixed top plate 12 opposite to the bottle mold 13. The top plate groove 1201 is connected to the hinge shaft of the bottle mold 13.
[0041] The bottle body mold 13 has a constant temperature tank 1301 on the outer side of its cavity. The top and bottom of the constant temperature tank 1301 are open. The bottom of the cavity of the bottle body mold 13 has a combined groove 1302, which is engaged with the outer wall of the bottle bottom mold 14. The round hole at the top of the bottle bottom mold 14 is connected to the constant temperature tank 1301. The connecting protrusion 801 at the telescopic end of the double-control cylinder 8 is engaged with the connecting groove 1001 of the sliding control plate 10 to control the opening and closing of the two bottle body molds 13. When the spherical protrusion 303 at the bottom of the outer wall of the central column 3 contacts one end of the fixed top plate 12, the top plate groove 1201 of the fixed top plate 12 can be pushed against the hinge shaft of the bottle body mold 13 to ensure the stability of the shaft position when the bottle body mold 13 is opened and closed, and to avoid displacement problems.
[0042] By adopting the above technical solution, the bottle bottom mold 14 and the vibrating turntable 9 can be connected by inserting the fixing block 1401 into the fixing hole 901, so as to improve the convenience of replacing the bottle bottom mold 14. One end of the control plate 15 hinged on the bottle body mold 13 is connected to the sliding control plate 10 through the connecting pin 11. By inserting and removing the connecting pin 11, the control plate 15 and the bottle body mold 13 can be replaced, so as to improve the convenience of replacing the bottle body mold 13 and realize the production of various glass bottles.
[0043] Example 3:
[0044] Based on the vibration mechanism for an assembled glass bottle mold with anti-bubble generation provided in Embodiment 1, the device connects the central column 3 and the vibration turntable 9 into a whole through the swing claw 7 rotatably connected to the bottom of the central column 3, so as to improve the thickness uniformity during glass bottle molding. The vibration mechanism for an assembled glass bottle mold with anti-bubble generation also includes: an annular plate at the bottom of the vibration turntable 9, the annular plate being slidably connected to the top inner wall of the fixed base 16; a key shaft 905 at the middle of the bottom of the vibration turntable 9, the key shaft 905 being slidably connected to the keyway 1701 opened at the top of the control shaft 17; and a four-slotted wheel 1702 at the bottom of the control shaft 17 and an intermittent dial 1801 connected to the top of the drive shaft of the control motor 18 forming an intermittent rotation mechanism.
[0045] By adopting the above technical solution, the keyway 1701 at the top of the control shaft 17 is connected to the key shaft 905 at the bottom of the vibrating turntable 9. After the vibrating turntable 9 performs up-and-down reciprocating vibration operation, the intermittent dial 1801 driven by the control motor 18 and the four-slot wheel 1702 can still control the vibrating turntable 9 to rotate intermittently, so as to realize the position change operation, thereby realizing the continuous operation of glass bottle forming, heat preservation and demolding, which facilitates the improvement of glass bottle processing efficiency.
[0046] The specific usage and function of this embodiment: In this invention, when in the preparatory position, the telescopic end of the main vibration cylinder 2, carrying the central column 3, is in mid-air. The control shaft 17 is rotated a quarter turn by the intermittent rotation mechanism consisting of the intermittent dial 1801 driven by the control motor 18 and the quarter-groove wheel 1702. The control shaft 17 controls the vibration turntable 9 to rotate a quarter turn through the connection of the keyway 1701 and the key shaft 905. Then, the main vibration cylinder 2 controls the central column 3 to descend. At this time, the connecting protrusions 801 at the ends of the two telescopic rods of the double-control cylinder 8 are engaged in the connecting grooves 1001 of the sliding control plate 10. The bottle mold 13 is opened and closed once, and then the central column 3 moves upward again, placing the molten glass into the mold cavity formed by the two bottle molds 13 and the bottle bottom mold 14 on the top right side of the vibration turntable 9. The central column 3 then descends again, and the bottom of the central column 3 is inserted into the connecting seat 904 opened in the middle of the top end face of the vibration turntable 9. At this time, the reciprocating motor 6 controls the reciprocating gear 601 to rotate, and through reciprocating... The meshing of gear 601 and control tooth 701 causes the swinging claw 7 to swing out from the bottom side wall of the central column 3 and lock into the connecting seat 904, thereby connecting the central column 3 and the vibrating turntable 9 into a whole. At the same time, the connecting air nozzle 4 connected to the end of the external bracket 301 is connected to the constant temperature tank 1301 of the bottle mold 13 under the action of the support spring 5. Hot air can then be supplied to the constant temperature tank 1301 and the mold cavity through the connecting air nozzle 4 to facilitate the forming of the glass bottle and reduce its size. The temperature difference between the bottle mold 13 and the molten glass, the connecting protrusions 801 at the ends of the two telescopic rods of the dual-control cylinder 8 are also engaged in the connecting grooves 1001 of the sliding control plate 10, and the spherical protrusion 303 at the bottom of the outer wall of the central column 3 contacts one end of the fixed top plate 12, so that the top plate groove 1201 end of the fixed top plate 12 can be pushed against the hinge shaft of the bottle mold 13, so that when the dual-control cylinder 8 controls the sliding control plate 10 to slide back and forth, the opening and closing of the bottle mold 13 can be controlled, and the problem of displacement of the shaft column can be avoided.
[0047] The above description is merely an exemplary embodiment of the present invention and is not intended to limit the scope of protection of the present invention, which is determined by the appended claims.
Claims
1. A vibration mechanism for an assembly-type glass bottle mold that prevents air bubble generation, characterized in that: Includes a main cylinder hanger; a main vibrating cylinder is fixedly installed in the middle of the main cylinder hanger, a central column is fixedly connected to the bottom of the telescopic end of the main vibrating cylinder, a connecting air nozzle is slidably connected to the top of the outer side wall of the central column, a dual-control air cylinder is fixedly installed in the middle of the inner side of the central column, a reciprocating motor is fixedly installed in the bottom of the inner side of the central column, a swing claw is hinged to the bottom of the outer side wall of the central column, the bottom of the main cylinder hanger is intermittently inserted into the middle of the top end face of the vibrating turntable, four sliding control plates are slidably connected in a ring array on the top end face of the vibrating turntable, a control plate is hinged to the middle of the two side walls of the sliding control plates, one end of the control plate is hinged to the bottle body mold, four bottle bottom molds are inserted in a ring array on the top end face of the vibrating turntable, the bottom of the vibrating turntable is rotatably connected to the top of the fixed base, a control shaft is rotatably connected to the middle of the bottom of the fixed base, and a control motor is installed on the right side of the fixed base of the control shaft; The two side walls of the sliding control plate are connected to the control plate by connecting pins. The control plate is hinged to the middle of the outer side wall of the bottle mold. The two bottle molds are hinged to each other at the end near the sliding control plate. A connecting groove is provided in the middle of the top side of the sliding control plate. A fixed top plate is slidably connected in the sliding groove provided in the middle of the sliding control plate. A top plate groove is provided at the end of the fixed top plate opposite to the bottle mold. The top plate groove is connected to the hinge shaft of the bottle mold. The outer side of the mold cavity of the bottle body mold is provided with a constant temperature tank. The top and bottom of the constant temperature tank are open. The bottom of the mold cavity of the bottle body mold is provided with a combined groove. The combined groove is engaged with the outer side wall of the bottle bottom mold. The round hole at the top of the bottle bottom mold is connected to the constant temperature tank. The top of the outer wall of the central column is provided with four triangular external brackets in a circular array. The ends of the external brackets are slidably connected to connecting nozzles. The top outer side of the connecting nozzles is provided with a limiting plate, which is locked in the top of the end of the external brackets. A supporting spring is provided between the bottom of the end of the external brackets and the bottom of the connecting nozzles. A cylinder is provided in the middle of the central column. A double-control cylinder is fixedly installed in the cylinder. The ends of the two telescopic rods of the double-control cylinder are provided with connecting protrusions, which are locked in the connecting grooves of the sliding control plate. The bottom of the outer wall of the central column is provided with four spherical protrusions in a circular array. The spherical protrusions are in intermittent contact with one end of the fixed top plate.
2. The vibration mechanism for an assembled glass bottle mold with anti-bubble generation as described in claim 1, characterized in that: The bottom of the vibrating turntable is provided with an annular plate, which is slidably connected to the top inner wall of the fixed base. A key shaft is provided in the middle of the bottom of the vibrating turntable, which is slidably connected to the keyway opened at the top of the control shaft. The four-slotted wheel at the bottom of the control shaft and the intermittent dial connected to the top of the control motor drive shaft constitute an intermittent rotation mechanism.
3. The vibration mechanism for an assembled glass bottle mold with anti-bubble generation as described in claim 1, characterized in that: The top end face of the vibrating turntable has four hexagonal fixed holes arranged in a ring array. The hexagonal fixed blocks at the bottom of the bottle bottom mold are inserted into the fixed holes. The inside of the bottle bottom mold is hollow and the outer side of the top end face has circular holes arranged in a ring.
4. The vibration mechanism for an assembled glass bottle mold with anti-bubble generation as described in claim 1, characterized in that: Four sets of guide slides are fixedly connected to the top end face of the vibrating turntable. Two guide slides are symmetrically arranged in each set. Each guide slide has a trapezoidal protrusion in the shape of an inverted trapezoid on its top. Two trapezoidal grooves symmetrically opened in the bottom end face of the sliding control plate are slidably connected to the trapezoidal protrusions on the top of each set of guide slides. A connecting seat is opened in the middle of the top end face of the vibrating turntable.
5. The vibration mechanism for an assembled glass bottle mold with anti-bubble generation as described in claim 1, characterized in that: The bottom of the outer side wall of the central column is provided with four hidden slots in a circular array. A swing pawl is rotatably connected in the hidden slot. The outer side wall where the swing pawl is connected to the reciprocating gear at the bottom of the reciprocating motor is provided with control tooth protrusions.